Now that the timeout is taken from the reader_permit. Signed-off-by: Benny Halevy <bhalevy@scylladb.com>
263 lines
8.9 KiB
C++
263 lines
8.9 KiB
C++
/*
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* Copyright (C) 2014-present ScyllaDB
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*/
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/*
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* This file is part of Scylla.
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*
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* Scylla is free software: you can redistribute it and/or modify
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* it under the terms of the GNU Affero General Public License as published by
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* the Free Software Foundation, either version 3 of the License, or
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* (at your option) any later version.
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*
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* Scylla is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with Scylla. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include "mutation.hh"
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#include "query-result-writer.hh"
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#include "flat_mutation_reader.hh"
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#include "mutation_rebuilder.hh"
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mutation::data::data(dht::decorated_key&& key, schema_ptr&& schema)
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: _schema(std::move(schema))
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, _dk(std::move(key))
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, _p(_schema)
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{ }
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mutation::data::data(partition_key&& key_, schema_ptr&& schema)
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: _schema(std::move(schema))
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, _dk(dht::decorate_key(*_schema, std::move(key_)))
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, _p(_schema)
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{ }
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mutation::data::data(schema_ptr&& schema, dht::decorated_key&& key, const mutation_partition& mp)
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: _schema(schema)
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, _dk(std::move(key))
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, _p(*schema, mp)
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{ }
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mutation::data::data(schema_ptr&& schema, dht::decorated_key&& key, mutation_partition&& mp)
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: _schema(std::move(schema))
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, _dk(std::move(key))
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, _p(std::move(mp))
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{ }
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void mutation::set_static_cell(const column_definition& def, atomic_cell_or_collection&& value) {
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partition().static_row().apply(def, std::move(value));
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}
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void mutation::set_static_cell(const bytes& name, const data_value& value, api::timestamp_type timestamp, ttl_opt ttl) {
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auto column_def = schema()->get_column_definition(name);
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if (!column_def) {
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throw std::runtime_error(format("no column definition found for '{}'", name));
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}
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if (!column_def->is_static()) {
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throw std::runtime_error(format("column '{}' is not static", name));
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}
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partition().static_row().apply(*column_def, atomic_cell::make_live(*column_def->type, timestamp, column_def->type->decompose(value), ttl));
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}
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void mutation::set_clustered_cell(const clustering_key& key, const bytes& name, const data_value& value,
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api::timestamp_type timestamp, ttl_opt ttl) {
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auto column_def = schema()->get_column_definition(name);
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if (!column_def) {
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throw std::runtime_error(format("no column definition found for '{}'", name));
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}
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return set_clustered_cell(key, *column_def, atomic_cell::make_live(*column_def->type, timestamp, column_def->type->decompose(value), ttl));
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}
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void mutation::set_clustered_cell(const clustering_key& key, const column_definition& def, atomic_cell_or_collection&& value) {
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auto& row = partition().clustered_row(*schema(), key).cells();
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row.apply(def, std::move(value));
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}
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void mutation::set_cell(const clustering_key_prefix& prefix, const bytes& name, const data_value& value,
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api::timestamp_type timestamp, ttl_opt ttl) {
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auto column_def = schema()->get_column_definition(name);
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if (!column_def) {
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throw std::runtime_error(format("no column definition found for '{}'", name));
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}
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return set_cell(prefix, *column_def, atomic_cell::make_live(*column_def->type, timestamp, column_def->type->decompose(value), ttl));
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}
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void mutation::set_cell(const clustering_key_prefix& prefix, const column_definition& def, atomic_cell_or_collection&& value) {
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if (def.is_static()) {
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set_static_cell(def, std::move(value));
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} else if (def.is_regular()) {
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set_clustered_cell(prefix, def, std::move(value));
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} else {
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throw std::runtime_error("attemting to store into a key cell");
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}
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}
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bool mutation::operator==(const mutation& m) const {
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return decorated_key().equal(*schema(), m.decorated_key())
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&& partition().equal(*schema(), m.partition(), *m.schema());
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}
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bool mutation::operator!=(const mutation& m) const {
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return !(*this == m);
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}
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uint64_t
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mutation::live_row_count(gc_clock::time_point query_time) const {
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return partition().live_row_count(*schema(), query_time);
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}
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bool
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mutation_decorated_key_less_comparator::operator()(const mutation& m1, const mutation& m2) const {
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return m1.decorated_key().less_compare(*m1.schema(), m2.decorated_key());
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}
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boost::iterator_range<std::vector<mutation>::const_iterator>
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slice(const std::vector<mutation>& partitions, const dht::partition_range& r) {
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struct cmp {
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bool operator()(const dht::ring_position& pos, const mutation& m) const {
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return m.decorated_key().tri_compare(*m.schema(), pos) > 0;
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};
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bool operator()(const mutation& m, const dht::ring_position& pos) const {
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return m.decorated_key().tri_compare(*m.schema(), pos) < 0;
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};
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};
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return boost::make_iterator_range(
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r.start()
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? (r.start()->is_inclusive()
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? std::lower_bound(partitions.begin(), partitions.end(), r.start()->value(), cmp())
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: std::upper_bound(partitions.begin(), partitions.end(), r.start()->value(), cmp()))
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: partitions.cbegin(),
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r.end()
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? (r.end()->is_inclusive()
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? std::upper_bound(partitions.begin(), partitions.end(), r.end()->value(), cmp())
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: std::lower_bound(partitions.begin(), partitions.end(), r.end()->value(), cmp()))
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: partitions.cend());
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}
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void
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mutation::upgrade(const schema_ptr& new_schema) {
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if (_ptr->_schema != new_schema) {
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schema_ptr s = new_schema;
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partition().upgrade(*schema(), *new_schema);
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_ptr->_schema = std::move(s);
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}
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}
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void mutation::apply(mutation&& m) {
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mutation_application_stats app_stats;
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partition().apply(*schema(), std::move(m.partition()), *m.schema(), app_stats);
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}
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void mutation::apply(const mutation& m) {
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mutation_application_stats app_stats;
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partition().apply(*schema(), m.partition(), *m.schema(), app_stats);
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}
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void mutation::apply(const mutation_fragment& mf) {
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partition().apply(*schema(), mf);
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}
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mutation& mutation::operator=(const mutation& m) {
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return *this = mutation(m);
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}
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mutation mutation::operator+(const mutation& other) const {
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auto m = *this;
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m.apply(other);
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return m;
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}
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mutation& mutation::operator+=(const mutation& other) {
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apply(other);
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return *this;
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}
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mutation& mutation::operator+=(mutation&& other) {
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apply(std::move(other));
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return *this;
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}
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mutation mutation::sliced(const query::clustering_row_ranges& ranges) const {
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return mutation(schema(), decorated_key(), partition().sliced(*schema(), ranges));
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}
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future<mutation_opt> read_mutation_from_flat_mutation_reader(flat_mutation_reader& r) {
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if (r.is_buffer_empty()) {
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if (r.is_end_of_stream()) {
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return make_ready_future<mutation_opt>();
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}
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return r.fill_buffer().then([&r] {
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return read_mutation_from_flat_mutation_reader(r);
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});
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}
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// r.is_buffer_empty() is always false at this point
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struct adapter {
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schema_ptr _s;
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std::optional<mutation_rebuilder> _builder;
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adapter(schema_ptr s) : _s(std::move(s)) { }
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void consume_new_partition(const dht::decorated_key& dk) {
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assert(!_builder);
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_builder = mutation_rebuilder(dk, std::move(_s));
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}
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stop_iteration consume(tombstone t) {
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assert(_builder);
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return _builder->consume(t);
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}
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stop_iteration consume(range_tombstone&& rt) {
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assert(_builder);
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return _builder->consume(std::move(rt));
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}
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stop_iteration consume(static_row&& sr) {
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assert(_builder);
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return _builder->consume(std::move(sr));
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}
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stop_iteration consume(clustering_row&& cr) {
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assert(_builder);
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return _builder->consume(std::move(cr));
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}
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stop_iteration consume_end_of_partition() {
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assert(_builder);
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return stop_iteration::yes;
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}
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mutation_opt consume_end_of_stream() {
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if (!_builder) {
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return mutation_opt();
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}
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return _builder->consume_end_of_stream();
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}
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};
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return r.consume(adapter(r.schema()));
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}
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std::ostream& operator<<(std::ostream& os, const mutation& m) {
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const ::schema& s = *m.schema();
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const auto& dk = m.decorated_key();
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fmt_print(os, "{{table: '{}.{}', key: {{", s.ks_name(), s.cf_name());
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auto type_iterator = dk._key.get_compound_type(s)->types().begin();
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auto column_iterator = s.partition_key_columns().begin();
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for (auto&& e : dk._key.components(s)) {
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os << "'" << column_iterator->name_as_text() << "': " << (*type_iterator)->to_string(to_bytes(e)) << ", ";
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++type_iterator;
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++column_iterator;
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}
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fmt_print(os, "token: {}}}, ", dk._token);
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os << mutation_partition::printer(s, m.partition()) << "\n}";
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return os;
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}
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